The present invention relates to a heating device used in hot press processes.
Known methods of manufacturing high strength pressed parts of a vehicle include hot pressing. In a hot pressing process, a high tensile steel sheet may be heated to a temperature of about 900° C., and then simultaneously press formed and rapidly cooled between pressing dies of a low temperature to produce a quenched product (see Japanese Patent Application Publication No. 2008-291284).
In general, the hot pressing include continuously heating a number of steel sheets in a furnace for improving the thermal efficiency.
However, the continuous heating exposes components of the furnace to the high temperature for a long time, which may cause components with low heat resistance to deform by creep. When the support elements that support a steel sheet or other workpiece in a furnace creep under the load of the workpiece to deform into a curved shape, various problems arise. For example, when a heated workpiece is taken off from the support elements by a transfer device, the height at which the workpiece is supported is lowered by the deformation of the support elements, so that the fork of the transfer device interferes with the lower surface of the workpiece.
There is thus a need to increase the bending strength of the support elements that support workpieces in the furnace of a heating device to prevent creep deformation of the support elements when the support elements are exposed to the high temperature for a long time in the furnace.
The present invention in one aspect provides a heating device for heating a workpiece, comprising a furnace defining a closed space insulated from an exterior and surrounded by a heat insulator, a heater disposed in the furnace to heat a workpiece, a bar-shaped support element for supporting a workpiece in the furnace, and bases holding longitudinal ends of the support element for mounting the support element on a wall of the furnace, the support element being configured to increase the bending strength against sagging between its longitudinal ends. In some embodiments, this prevents deformation when the support element is exposed to the high temperature for a long time in the furnace to become susceptible to deformation.
In one embodiment, the support element may have a shape of a rectangular tube, the rectangular tube having a double bottom. In some embodiments, this increases the bending strength of the support element with respect to the sagging between its longitudinal ends, and prevents deformation when the support element is exposed to the high temperature for a long time in the furnace to become susceptible to deformation.
In another embodiment, the support element may comprise two upper and lower rectangular tube members integrally joined together. The support element thus comprise a rectangular tube having a double bottom, which in some embodiments increases the bending strength against sagging between its longitudinal ends, and prevents deformation when the support element is exposed to the high temperature for a long time in the furnace to become susceptible to deformation.
In yet another embodiment, the support element may comprise a rectangular tube member, and a U-section reinforcement member joined to the rectangular tube member along the lower lateral surface of the rectangular tube member, the bottom of the rectangular tube member being spaced from the bottom of the reinforcement member by a predetermined gap. The rectangular tube member thus has a double bottom, which in some embodiments increases the bending strength of the support element against the sagging between the longitudinal ends, and prevents deformation when the support element is exposed to the high temperature for a long time in a furnace to become susceptible to deformation.
In yet another embodiment, the support element may comprise a rectangular tube comprising two opposing U-section sheet steel members integrally joined to form a closed cross section. In some embodiments, this increases the bending strength against sagging between its longitudinal ends, and prevents deformation when the support element is exposed to the high temperature for a long time in the furnace to become susceptible to deformation.
In yet another embodiment, the support element may be made of an austenitic nickel-iron-chromium solid solution alloy, preferably comprising, in percent by weight, 30 to 32% nickel, 19 to 22% chromium, 0.06 to 0.1% carbon, 0.5 to 1.5% manganese, 0.2 to 0.7% silicon, up to 0.015% phosphorus, up to 0.01% sulfur, up to 0.5% copper, 0.3 to 0.6% aluminum, and 0.3 to 0.6% titanium, wherein aluminum and titanium together are up to 1.2%, the remainder being iron. The support element made of the material specified above increases the bending strength of the support element against sagging between the longitudinal ends. This prevents deformation when the support element is exposed to the high temperature for a long time in the furnace to become susceptible to deformation.
As shown in
Each single-stage unit may comprise a box-shaped combination of an inlet side plate 13a, an outlet side plate 13b, a left side frame 14a and a right side frame 14b, and an arrangement of heater supporting plates 15 each extending from the front to the rear between the inlet side plate 13a and the outlet side plate 13b. In
As shown in
As shown in
Each support element 30 may be a rectangular tube and extends between the inlet side plate 13a and the outlet side plate 13b, similarly to the heater supporting plates 15. More specifically, as shown in
The support element 30A thus has the rectangular tube member 30f, which is similar to a common support element, covered by the reinforcement member 30e on the bottom, resulting in the rectangular tube having a double bottom. Therefore the support element 30A has a higher rigidity and a higher bending strength against sagging between its longitudinal ends. This prevents deformation of the support element 30 when the support element 30 is exposed to the high temperature for a long time in the furnace to become susceptible to deformation.
In another embodiment, the rectangular tube member 30f may be provided with a double bottom by welding the U-section reinforcement member 30e to the rectangular tube member 30f with its open end faces butted against the bottom surface of the rectangular tube member 30f, instead of the U-section reinforcement member 30e covering the lower side of the rectangular tube member 30f as described above.
Accordingly, the heating devices in embodiments using the support element 30 and the support element 30A can reduce the frequency of replacing support elements to about a half as compared with the case of using common support elements. This means that the maintenance cost is suppressed to about a half. The heating devices in embodiments using the support element 30B hardly require replacement of the support elements.
As shown as hatched areas in
As shown in
In use of the heating device described above in a hot pressing process, the heater 20 is energized to generate heat, the shutters 18 on the inlet side are sequentially opened, a workpiece W is transferred into each single-stage unit, as shown in
While specific embodiments of the present invention have been described above, the embodiments of the present invention are not limited to the appearances and configurations shown in the above description and the drawings, and those skilled in the art will appreciate that various modifications, additions and deletions.
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2015-203651 | Oct 2015 | JP | national |
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PCT/JP2016/080479 | 10/14/2016 | WO | 00 |
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WO2017/065253 | 4/20/2017 | WO | A |
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